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首页> 外文期刊>Ultrasonics, Ferroelectrics and Frequency Control, IEEE Transactions on >Estimating the total ultrasound attenuation along the propagation path by applying multiple filters to backscattered echoes from a single spherically focused source
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Estimating the total ultrasound attenuation along the propagation path by applying multiple filters to backscattered echoes from a single spherically focused source

机译:通过将多个滤波器应用于来自单个球形聚焦源的反向散射回波,估算沿传播路径的总超声衰减

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Quantifying the correlation length of the tissue microstructure has shown potential for differentiating between benign and malignant tumors. To implement these advances in the clinic, the total frequency-dependent attenuation along the propagation path must be determined on a patient specific basis. Previously, an algorithm was developed to estimate this attenuation using echoes from multiple sources. In this study, the developed algorithm was extended to echoes from a single source by filtering the echoed signal into multiple frequency bands. This step was needed because it would be challenging to scan exactly the same tissue region using multiple sources in the clinic. Computer simulations and phantom experiments were conducted to verify the attenuation could be determined by filtering the echoes from a single source. The simulations utilized a spherically focused single-element source (5 cm focal length, f/4, 14 MHz center frequency, 50% bandwidth) exposing a homogeneous tissue region (Gaussian scattering structures with effective radii of 5 to 55 ;C;m at a density of 250/mm3, attenuation of 0.1 to 0.9 dB/cm.MHz). The phantom experiments utilized a spherically focused single-element source (5.08 cm focal length, f/4, 7.5 MHz center frequency) exposing a 0.5 dB/cm.MHz homogeneous glass bead phantom. The computer simulations and phantom experiment confirmed that the total attenuation along the propagation path can be determined by appropriately applying multiple filters to the backscattered echoes from a single source.
机译:量化组织微结构的相关长度已显示出区分良性和恶性肿瘤的潜力。为了在临床上实现这些进步,必须根据患者的具体情况确定沿传播路径的总频率相关衰减。以前,已经开发了一种算法,可以使用来自多个源的回波来估计此衰减。在这项研究中,通过将回波信号过滤到多个频带中,将开发的算法扩展到单个源的回波。之所以需要执行此步骤,是因为在临床中使用多个源来扫描完全相同的组织区域将具有挑战性。进行了计算机仿真和幻像实验,以验证可以通过过滤来自单个源的回波来确定衰减。模拟使用球形聚焦单元素源(焦距5 cm,f / 4、14 MHz中心频率,50%带宽)暴露出均匀的组织区域(高斯散射结构,有效半径为5至55; C; m在密度为250 / mm3,衰减为0.1至0.9 dB / cm.MHz)。体模实验使用了球形聚焦单元素光源(焦距为5.08 cm,f / 4,中心频率为7.5 MHz),暴露出0.5 dB / cm.MHz的均匀玻璃珠体模。计算机仿真和幻像实验证实,可以通过将多个滤波器适当地应用于来自单个源的反向散射回波来确定沿传播路径的总衰减。

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